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首页> 外文期刊>Frontiers in Neuroscience >Feasibility of simultaneous whole-brain imaging on an integrated PET-MRI system using an enhanced 2-point Dixon attenuation correction method
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Feasibility of simultaneous whole-brain imaging on an integrated PET-MRI system using an enhanced 2-point Dixon attenuation correction method

机译:使用增强的2点Dixon衰减校正方法在集成PET-MRI系统上同时进行全脑成像的可行性

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Purpose: To evaluate a potential approach for improved attenuation correction (AC) of PET in simultaneous PET and MRI brain imaging, a straightforward approach that adds bone information missing on Dixon AC was explored. Methods: Bone information derived from individual T1-weighted MRI data using segmentation tools in SPM8, were added to the standard Dixon AC map. Percent relative difference between PET reconstructed with Dixon+bone and with Dixon AC maps were compared across brain regions of 13 oncology patients. The clinical potential of the improved Dixon AC was investigated by comparing relative perfusion (rCBF) measured with arterial spin labeling to relative glucose uptake (rPET_(dxbone)) measured simultaneously with~(18)F-flurodexoyglucose in several regions across the brain. Results: A gradual increase in PET signal from center to the edge of the brain was observed in PET reconstructed with Dixon+bone. A 5–20% reduction in regional PET signals were observed in data corrected with standard Dixon AC maps. These regional underestimations of PET were either reduced or removed when Dixon+bone AC was applied. The mean relative correlation coefficient between rCBF and rPET_(dxbone)was r = 0.53 ( p < 0.001). Marked regional variations in rCBF-to-rPET correlation were observed, with the highest associations in the caudate and cingulate and the lowest in limbic structures. All findings were well matched to observations from previous studies conducted with PET data reconstructed with computed tomography derived AC maps. Conclusion: Adding bone information derived from T1-weighted MRI to Dixon AC maps can improve underestimation of PET activity in hybrid PET-MRI neuroimaging.
机译:目的:为了评估在同时进行PET和MRI脑成像中改善PET的衰减校正(AC)的潜在方法,探索了一种直接方法,该方法可以添加Dixon AC缺少的骨骼信息。方法:使用SPM8中的分割工具,将来自各个T1加权MRI数据的骨骼信息添加到标准Dixon AC图中。比较了用Dixon + bone重建的PET和用Dixon AC图重建的PET在13例肿瘤患者大脑区域之间的相对百分比差异。通过比较用动脉自旋标记法测量的相对灌注(rCBF)与同时在脑部多个区域同时测量〜(18)F-氟葡糖葡萄糖的相对葡萄糖摄入量(rPET_(dxbone)),研究了改良的Dixon AC的临床潜力。结果:在用Dixon + bone重建的PET中,观察到PET信号从大脑中心到边缘逐渐增加。在用标准Dixon AC图校正的数据中,观察到区域PET信号减少了5-20%。使用Dixon + bone AC可以减少或消除PET的这些区域低估。 rCBF和rPET_(dxbone)之间的平均相对相关系数为r = 0.53(p <0.001)。观察到rCBF与rPET相关性存在明显的区域差异,在尾状和扣带状的关联最高,而在边缘结构中的关联最低。所有发现均与先前用计算机断层扫描得出的AC图重建的PET数据进行的研究得到的观察结果非常吻合。结论:将来自T1加权MRI的骨骼信息添加到Dixon AC图中可以改善对混合PET-MRI神经成像中PET活性的低估。

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